• 제목/요약/키워드: Analysis of high velocity impact

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비상체의 고속 충격을 받는 시멘트복합체의 혼입 단섬유에 따른 파괴저감특성 분석 (Analysis of Failure Reduction Properties Cementitious Composites with Reinforced Fiber by Impact of High Velocity Projectile)

  • 전인우;김규용;최경철;김홍섭;김정현;한상휴
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2014년도 추계 학술논문 발표대회
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    • pp.186-187
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    • 2014
  • Flexural stress and fracture energy of fiber reinforced cementitious composites is increased by bridge effect of reinforced fiber, scabbing failure is restrained. Shape, properties of fiber were SF(steel fiber), PA(polyamide), NY(nylon) have effects on flexural stress and fracture energy, impact resistance improve of fiber reinforced cementitious composites. In this study, local failure properties by impact of high velocity projectile was analyzed by mixing 3 types of fiber which have different shape and properties respectively.

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복합판재의 파단 변형률 불확실성을 고려한 탄 관통 잔류속도에 대한 시험 및 수치해석 (Test and Numerical Analysis for Penetration Residual Velocity of Bullet Considering Failure Strain Uncertainty of Composite Plates)

  • 차명석;이민형
    • 대한기계학회논문집A
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    • 제40권3호
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    • pp.281-288
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    • 2016
  • 복합재는 재료 불균질성에 의해 고속 충돌 시 방호성능 자료가 산포한다. 본 연구에서는 다수의 충돌시험으로 복합판재 잔류속도 산포를 확보하고 수치해석으로 예측하는 방법을 정립하였다. 먼저 10개의 동일 시편으로 인장시험을 수행하여 파단변형률 산포를 얻었다. 같은 재료로 제작된 4ply([0/90]s)와 8ply([0/90/0/90]s) GFRP(Glass Fiber Reinforced Plastic) 복합판재에 FSP(Fragment Simulating Projectile) 고속 충돌시험을 동일 조건에서 다수 수행하여 잔류속도 산포를 얻었다. 인장시험에서 얻어진 파단 변형률 분포를 이용하여 수치해석을 수행하였다. 충돌속도는 4ply와 8ply 각각 411.7m/s와 592.5m/s이다. 시험 결과와 비교하여 적절한 잔류속도의 산포를 예측할 수 있었다. 추가적으로 복합판재의 경우 Solid요소 대비 Layered Solid요소로 모델링하면 계산시간이 감소되었다.

고속충돌에 따른 재료 파괴 및 파편의 분산거동 연구 (Study on Material Fracture and Debris Dispersion Behavior via High Velocity Impact)

  • 사공재;우성충;김진영;김태원
    • 대한기계학회논문집A
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    • 제41권11호
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    • pp.1065-1075
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    • 2017
  • 본 연구는 고속충돌에 따른 파괴로 인하여 발생한 파편들의 분산거동을 예측하기 위해 고속충돌 실험과 함께 재료거동 모델링 및 수치해석을 수행하였다. 알루미늄 합금과 강철로 각각 구성된 2종류의 위협체 및 표적판에 대해 충돌실험을 수행하였으며 위협체는 약 1 km/s의 속력으로 표적판과 충돌하고, 이 충돌로 인하여 발생한 파편은 알루미늄 합금 관측판에 손상을 유발시키게 하였다. 사용된 소재의 차이에 의해 파편의 분산거동이 상이하였으며 이에 따라 관측판에 형성된 파편의 분산 반경 또한 다름을 확인하였다. 수치해석은 실험과 동일한 조건하에서 수행되었으며 파편으로 인한 파괴 및 손상을 모사하기 위하여 입자완화 유체동역학(smoothed particle hydrodynamics, SPH)기법과 유한요소(finite element, FE) 연계 기법을 적용하였다. 실험 측정된 결과와 해석값을 비교분석한 바, 표적판의 관통부 지름과 관측판상의 파편 분산반경은 5 % 이내의 오차로 잘 일치하였다. 아울러 강철 위협체와 강철 표적판이 충돌한 경우 가장 큰 분산반경을 보임에 따라 타 경우에 비해 가장 위협적임을 알 수 있었다.

골프 스윙동작의 운동학적 분석 (A Kinematic analysis of Golf Swing Motion)

  • 신성휴;고석곤
    • 한국운동역학회지
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    • 제13권2호
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    • pp.101-114
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    • 2003
  • The purpose of this study was to examine the major kinematicak variance to Increase the club head velocity during the driver swing two PGA prp-golfers utilizing 3-dimensional Image analyzing linear velocity of the club-head during the impact quantiatively. To achive these purpose, two high speed camera in 120 field/s and one high-speed camera in 500 field/s were used in this study. The program made by Younghoo Kwon(1944) was used to analysis the digitalization of reference point, digitalization of joint venter, synchronization, calculation of 3-Dimensional coordinate by DLT method, and smoothing. Through this study, the conclusions are as follow. 1. During the drivel swing, in the percentile of the total time, two pro-golfer showed 0.925, 0.929 second from adress to top-swing, 0.236, 0.929 second from top-swing to impact. 2. During the driver swing, in the displacement of the center of the body, two pro-golfer showed 45.3, 45.23% from adress, 44.3, 44.24% front impact. 3. In the velocity variance, The maximum club-head velocity two pro-golfer showed 43.36, 43.24m/s respectively the down swing. The ball velocity showed 63.12, 63.06m/s. 4. In the rotational angle of the shoulder joint. two pro-golfer showed $-13.5,-13.53^{\circ}$, during the back swing respectively. Two subject adressed opening status og upper body. 5. In the rotational angle of the right knee angle showed $156.3,154.7^{\circ}$ from the adress.

Z형 직물의 고속 충격 에너지 흡수 특성 (Energy Absorption Characteristics of Z-shape Fabric under High Velocity Impact)

  • 최충현;박유림;김윤호;노재영;김천곤
    • Composites Research
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    • 제28권4호
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    • pp.176-181
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    • 2015
  • 본 연구에서는 stuffed Whipple shield의 성능 향상을 목적으로, stuffed Whipple shield의 중간층에 적용되는 직물의 방탄 성능 향상 기법으로서 Z형 직물 디자인을 제안하였다. 직물은 경계조건에 의하여 충격 현상과 방탄 성능이 크게 변화하게 된다. 따라서 기존의 단순 적층식 직물과는 다른 경계조건을 갖는 Z형 직물을 제안하였고, Z형 직물의 방탄 성능을 확인하기 위하여 상용 프로그램 LS-DYNA를 이용한 아라미드 섬유사와 직물에 대한 충격해석을 수행하여 에너지 흡수 특성을 계산하고, 그 결과를 단순 적층식 섬유사와 직물의 경우와 비교하였다. 그 결과 Z형 직물은 단순 적층식 직물과는 다른 충격 거동을 보이고, 고속 영역에서 2 edge fixed, 4 edge fixed보다 높은 에너지 흡수율을 보이는 것을 확인하였다.

구형 비상체에 의한 충격하중을 받는 강섬유보강 콘크리트 패널의 손상특성 (Face Damage Characteristic of Steel Fiber-Reinforced Concrete Panels under High-Velocity Globular Projectile Impact)

  • 장석준;손석권;김용환;김규용;윤현도
    • 콘크리트학회논문집
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    • 제27권4호
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    • pp.411-418
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    • 2015
  • 본 연구는 섬유혼입률 및 패널 두께가 구형비상체 충격에 의한 강섬유보강 콘크리트(SFRC) 패널의 손상특성에 미치는 영향을 알아보기 위하여 실시되었다. 실험체는 $200{\times}200mm$의 각형 패널로 계획하였으며, 두께는 30 및 50 mm로 설정하였다. 비상체는 직경 20 mm의 강재이며, 속도는 350 m/s로 실험을 실시하였다. 또한 본 연구에서는 SFRC의 역학적 특성과 내충격 성능의 상호관계를 평가하였다. SFRC의 역학적특성은 압축강도, 파괴계수 및 재료의 인성을 평가하였다. 비상체 충격에 의한 패널의 전면손실률은 압축인성이 증가함에 따라 감소하였고, 파괴계수 및 휨인성이 향상됨에 따라 배면손실률이 감소하는 것으로 나타났다. 강섬유보강 콘크리트의 동적특성 평가를 위하여, 상용 프로그램인 ABAQUS/Explicit를 사용하여 유한요소해석을 실시하였다. 해석결과 파괴양상이 유사한 경우 전면 및 배면손실률을 잘 예측하는 것으로 나타났다.

Optimization of safety factor by adaptive simulated annealing of composite laminate at low-velocity impact

  • Sidamar, Lamsadfa;Said, Zirmi;Said, Mamouri
    • Coupled systems mechanics
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    • 제11권4호
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    • pp.285-295
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    • 2022
  • Laminated composite plates are utilized extensively in different fields of construction and industry thanks to their advantages such as high stiffness-to-weight ratio. Additionally, they are characterized by their directional properties that permit the designer to optimize their stiffness for specific applications. This paper presents a numerical analysis and optimization study of plates made of composite subjected to low velocity impact. The main aim is to identify the optimum fiber orientations of the composite plates that resist low velocity impact load. First, a three-dimensional finite element model is built using LS DYNA computer software package to perform the impact analyses. The composite plate has been modeled using solid elements. The failure criteria of Tsai-Wu's criterion have been used to control the strength of the composite material. A good agreement has been found between the predicted numerical results and experimental results in the literature which validate the finite element model. Then, an Adaptive Simulated Annealing (ASA) has been used to optimize the response of impacted composite laminate where its objective is to maximize the safety factor by varying the ply angles. The results show that the ASA is robust in the sense that it is capable of predicting the best optimal designs.

6-방정식 확산경계 모델을 이용한 압축성 고체 및 액체에서 충격파 해석 (NUMERICAL ANALYSIS OF THE SHOCK WAVES IN COMPRESSIBLE SOLIDS AND LIQUIDS USING A SIX-EQUATION DIFFUSE INTERFACE MODEL)

  • 염금수
    • 한국전산유체공학회지
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    • 제17권3호
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    • pp.99-107
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    • 2012
  • In this paper, the shock waves in compressible solids and liquids are simulated using a six-equation diffuse interface multiphase flow model that is extended to the Cochran and Chan equation of state. A pressure relaxation method based on a volume fraction function and a pressure-correction equation are newly implemented to the six-equation model. The developed code has been validated by a shock tube problem with liquid nitromethane and an impact problem of a copper plate on a solid explosive. In addition, a new problem, an impact of a copper plate on liquid nitromethane, has been solved. The present code well shows the wave structures in compressible solids and liquids without any numerical oscillations and overshoots. After the impact of a solid copper plate on liquid, two shock waves (one propagates into liquid and the other into solid) are generated and a material interface moves to the impacting direction. The computational results show that the shock velocity inside the liquid linearly increases with the impact velocity.

스탠스 유형에 따른 테니스 포핸드 스트로크의 라켓헤드 속도분석 (Analysis of Racket Head Velocity of Tennis Forehand Stroke by Stance Patterns)

  • 서국웅;강영택;이경순;서국은;김정태
    • 한국운동역학회지
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    • 제17권1호
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    • pp.53-60
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    • 2007
  • Recently tennis techniques has been changed in stance patterns. Stance is consist of square stance, open stance and semi-open stance. The purpose of this study was to analyze the kinematics variables of racket head velocity during forehand stroke by stance patterns. Eight high school tennis players were chosen for the study who use semi western grip right-handed person more than career 7 years. They performed horizontal swing and vertical swing that it was done each five consecutive trial in the condition of square, open and semi-open stance. The results showed that racket head velocity significant difference was not observed in stance types between swings at impact. Y and Z components of racket head velocity for horizontal and vertical swing at second prior to impact and at impact were that y components velocity was faster horizontal swing than vertical swing and z components velocity was later horizontal swing than vertical swing. Statistically significant variable to racket head velocity and Pearson's correlation were drawn as follows. 1. Z components of racket head velocity in square stance was significant correlation by right knee joint. 2. Y components of racket head velocity in semiopen stance was significant correlation by left hip joint. 3. Y components of racket head velocity in open stance was significant correlation by left ankle joint.

태권도 숙련자와 미숙련자의 공격뒤차기 동작에 대한 운동학적 분석 (The Kinematic Analysis of Back-Kick Motion in Taekwondo)

  • 이동진;박찬호;김헌수
    • 한국운동역학회지
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    • 제16권3호
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    • pp.43-51
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    • 2006
  • The purpose of this study was to analyze kinematic variables during turing back kick motion of Taekwondo. The subjects of this study were the 4 skilled and 4 unskilled of male university player in respectively. The experiment of this study was used two 16mm high speed cameras and its speed 125 frames/s. Analysis of this data was three dimensional cinematography using KWON3D program package. The results were as following; 1. In the elapsed time, there was no significance difference statically between a skilled and unskilled group. But skilled group was more fast during the motion of I phase. And unskilled group was more fast during the motion of II phase so called force production section, which had an influence on Diechagi's velocity. 2. In the center of gravity of human body, the changing of it was $1.10{\pm}0.04m$, $1.12{\pm}0.03m$ of LFM(left foot movement) and $1.36{\pm}0.08m$, $1.39{\pm}0.09m$ of RKF(right knee flection), and $1.44{\pm}0.08m$, $1.42{\pm}0.09m$ of RFI(right foot impact). There was no significance difference statically between the two groups. 3. The velocity of heel on impact was 1.13m/s in the skilled group and 1.23m/s in the unskilled group, when each angle of knee was $110.4{\pm}10.9deg/s$, $114.8{\pm}28.4deg/s$. The maximum velocity of each performance was reached before the RKF, and the velocity and angle at impact along by two groups did not show any significant difference statically. 4. In the angular velocity of just RKF of lower leg, there was significance difference statically between the two groups(p<.05).